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Updated: Feb 10, 2026

Patient-Derived Tumor Explants As a "Live" Preclinical Platform for Predicting Drug Resistance in Patients
Published on: February 7, 2021
Tumor-on-Chip Platforms for Precision Oncology: Bridging Tumor Heterogeneity and Preclinical Drug Testing
Chiao-Min Lin1, Hsuan-Yu Steven Mu2, Ching-Tso Chen3,4,5
1Department of Chemical Engineering, National Tsing Hua University, Hsinchu, Taiwan.
Abstract:
Cancer drug development faces persistently low clinical success despite growing investment, mainly due to a translational gap driven by intratumoral heterogeneity, host-tumor interactions, and resistance evolution. Tumor-on-chip platforms have emerged to bridge this gap by reconstructing human-relevant microenvironments, yet current systems fall short in predictive power and scalability. Key limitations include: (i) incomplete tumor representation-reliance on single-line models, loss of stromal and immune diversity, and PDMS sorption-induced dosing errors; (ii) workflow barriers-non-standardized fabrication, low throughput, endpoint-biased analysis, and limited automation; and (iii) clinical integration issues-restricted patient tissue access, lack of interoperable cryobank resources, and weak linkage to clinical outcomes. This review critically examines these challenges and proposes strategies such as modular biomimetic designs, immune-stroma-tumor co-reconstitution using cryopreserved cells, standardized platforms with automated analytics, and cross-validation with clinical or animal data to build regulatory confidence. We further discuss the impact of the FDA Modernization Act 2.0 and emerging market incentives driving non-animal technologies. By coupling critique with pragmatic solutions, this review delineates a forward-looking roadmap for advancing tumor-on-chip platforms into decision-grade tools for precision oncology.
Insights
Tumor-on-chip platforms aim to improve cancer drug development by mimicking tumor microenvironments. Current limitations hinder their predictive power, but proposed solutions like modular designs and standardized analytics can advance their clinical utility.
Area of Science:
- Biomedical Engineering
- Oncology
- Drug Development
Background:
- Cancer drug development faces low success rates due to translational gaps.
- Tumor-on-chip platforms offer a solution by recreating tumor microenvironments.
- Existing platforms have limitations in predictive power and scalability.
Purpose of the Study:
- Critically examine challenges in current tumor-on-chip platforms.
- Propose strategies to enhance their predictive capabilities and clinical relevance.
- Outline a roadmap for advancing these platforms for precision oncology.
Main Methods:
- Review of current tumor-on-chip platform limitations.
- Analysis of strategies for improved tumor representation (e.g., modular designs, co-culture).
- Discussion of workflow standardization, automation, and clinical integration.
Main Results:
- Identified key limitations: incomplete tumor representation, workflow barriers, and clinical integration issues.
- Proposed solutions include biomimetic designs, immune-stroma-tumor co-reconstitution, and automated analytics.
- Highlighted regulatory drivers like the FDA Modernization Act 2.0.
Conclusions:
- Advancing tumor-on-chip platforms requires addressing current limitations through innovative designs and standardization.
- These improved platforms can become decision-grade tools for precision oncology.
- The development aligns with regulatory shifts favoring non-animal testing methods.
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